Cargando…

A Simulation Methodology for Analyzing the Energy-Absorption Capabilities of Nanofluidic-System-Filled Tube under Split Hopkinson Pressure Bar Experiment

The energy-absorption mechanism of nanofluidic systems is being investigated under dynamic cases, represented by the split Hopkinson pressure bar experiment. However, the cost of this cannot be ignored. Therefore, numerical simulation is playing an increasingly important role in optimizing the split...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhang, Shuming, Zhu, Ziqian, Li, Shuaijun, Yu, Fei, Tian, Chunping, Yao, Lu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9572938/
https://www.ncbi.nlm.nih.gov/pubmed/36234370
http://dx.doi.org/10.3390/ma15197030
_version_ 1784810741973385216
author Zhang, Shuming
Zhu, Ziqian
Li, Shuaijun
Yu, Fei
Tian, Chunping
Yao, Lu
author_facet Zhang, Shuming
Zhu, Ziqian
Li, Shuaijun
Yu, Fei
Tian, Chunping
Yao, Lu
author_sort Zhang, Shuming
collection PubMed
description The energy-absorption mechanism of nanofluidic systems is being investigated under dynamic cases, represented by the split Hopkinson pressure bar experiment. However, the cost of this cannot be ignored. Therefore, numerical simulation is playing an increasingly important role in optimizing the split Hopkinson pressure bar experimental technology and analyzing its accuracy. In this paper, a three-dimensional finite element simulation model of the split Hopkinson pressure bar experimental devices was proposed to analyze the energy-absorption capabilities of nanofluidic-system-filled tubes. The reliability of this methodology was discussed in terms of model construction, model validation and potential application, indicating the simulation methodology is applicable to further investigation and can provide a reference for engineering practice. The simulation results showed that the infiltration pressure and the mass ratio of solid to liquid determine the post-buckling compression stress and the effective compression stroke, respectively.
format Online
Article
Text
id pubmed-9572938
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-95729382022-10-17 A Simulation Methodology for Analyzing the Energy-Absorption Capabilities of Nanofluidic-System-Filled Tube under Split Hopkinson Pressure Bar Experiment Zhang, Shuming Zhu, Ziqian Li, Shuaijun Yu, Fei Tian, Chunping Yao, Lu Materials (Basel) Article The energy-absorption mechanism of nanofluidic systems is being investigated under dynamic cases, represented by the split Hopkinson pressure bar experiment. However, the cost of this cannot be ignored. Therefore, numerical simulation is playing an increasingly important role in optimizing the split Hopkinson pressure bar experimental technology and analyzing its accuracy. In this paper, a three-dimensional finite element simulation model of the split Hopkinson pressure bar experimental devices was proposed to analyze the energy-absorption capabilities of nanofluidic-system-filled tubes. The reliability of this methodology was discussed in terms of model construction, model validation and potential application, indicating the simulation methodology is applicable to further investigation and can provide a reference for engineering practice. The simulation results showed that the infiltration pressure and the mass ratio of solid to liquid determine the post-buckling compression stress and the effective compression stroke, respectively. MDPI 2022-10-10 /pmc/articles/PMC9572938/ /pubmed/36234370 http://dx.doi.org/10.3390/ma15197030 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhang, Shuming
Zhu, Ziqian
Li, Shuaijun
Yu, Fei
Tian, Chunping
Yao, Lu
A Simulation Methodology for Analyzing the Energy-Absorption Capabilities of Nanofluidic-System-Filled Tube under Split Hopkinson Pressure Bar Experiment
title A Simulation Methodology for Analyzing the Energy-Absorption Capabilities of Nanofluidic-System-Filled Tube under Split Hopkinson Pressure Bar Experiment
title_full A Simulation Methodology for Analyzing the Energy-Absorption Capabilities of Nanofluidic-System-Filled Tube under Split Hopkinson Pressure Bar Experiment
title_fullStr A Simulation Methodology for Analyzing the Energy-Absorption Capabilities of Nanofluidic-System-Filled Tube under Split Hopkinson Pressure Bar Experiment
title_full_unstemmed A Simulation Methodology for Analyzing the Energy-Absorption Capabilities of Nanofluidic-System-Filled Tube under Split Hopkinson Pressure Bar Experiment
title_short A Simulation Methodology for Analyzing the Energy-Absorption Capabilities of Nanofluidic-System-Filled Tube under Split Hopkinson Pressure Bar Experiment
title_sort simulation methodology for analyzing the energy-absorption capabilities of nanofluidic-system-filled tube under split hopkinson pressure bar experiment
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9572938/
https://www.ncbi.nlm.nih.gov/pubmed/36234370
http://dx.doi.org/10.3390/ma15197030
work_keys_str_mv AT zhangshuming asimulationmethodologyforanalyzingtheenergyabsorptioncapabilitiesofnanofluidicsystemfilledtubeundersplithopkinsonpressurebarexperiment
AT zhuziqian asimulationmethodologyforanalyzingtheenergyabsorptioncapabilitiesofnanofluidicsystemfilledtubeundersplithopkinsonpressurebarexperiment
AT lishuaijun asimulationmethodologyforanalyzingtheenergyabsorptioncapabilitiesofnanofluidicsystemfilledtubeundersplithopkinsonpressurebarexperiment
AT yufei asimulationmethodologyforanalyzingtheenergyabsorptioncapabilitiesofnanofluidicsystemfilledtubeundersplithopkinsonpressurebarexperiment
AT tianchunping asimulationmethodologyforanalyzingtheenergyabsorptioncapabilitiesofnanofluidicsystemfilledtubeundersplithopkinsonpressurebarexperiment
AT yaolu asimulationmethodologyforanalyzingtheenergyabsorptioncapabilitiesofnanofluidicsystemfilledtubeundersplithopkinsonpressurebarexperiment
AT zhangshuming simulationmethodologyforanalyzingtheenergyabsorptioncapabilitiesofnanofluidicsystemfilledtubeundersplithopkinsonpressurebarexperiment
AT zhuziqian simulationmethodologyforanalyzingtheenergyabsorptioncapabilitiesofnanofluidicsystemfilledtubeundersplithopkinsonpressurebarexperiment
AT lishuaijun simulationmethodologyforanalyzingtheenergyabsorptioncapabilitiesofnanofluidicsystemfilledtubeundersplithopkinsonpressurebarexperiment
AT yufei simulationmethodologyforanalyzingtheenergyabsorptioncapabilitiesofnanofluidicsystemfilledtubeundersplithopkinsonpressurebarexperiment
AT tianchunping simulationmethodologyforanalyzingtheenergyabsorptioncapabilitiesofnanofluidicsystemfilledtubeundersplithopkinsonpressurebarexperiment
AT yaolu simulationmethodologyforanalyzingtheenergyabsorptioncapabilitiesofnanofluidicsystemfilledtubeundersplithopkinsonpressurebarexperiment